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Ionic Liquid-Assisted Synthesis of Pt Nanoparticles onto Exfoliated Graphite Nanoplatelets for Fuel Cells

机译:离子液体辅助将Pt纳米颗粒合成到用于燃料电池的脱落石墨纳米片上

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Exfoliated graphite nanoplatelets (GnP) has heen investigated as an electrocatalyst support for fuel cell applications. GnP-supported Pt catalysts were synthesized by a microwave process in the presence of room temperature ionic liquids (RTILs). Thermal-oxidation resistance of GnP and GnP-supported Pt catalysts was studied by thermogravimetric analysis and compared with a variety of other carbon nanostructures: carbon black, graphite nanofiber, single- and multiwalled carbon nanotubes. GnP showed the best thermal-oxidative stability. The results obtained from X-ray diffraction, X-ray photoelectron spectroscopy, electrochemical testing, scanning and transmission electron microscopy showed that the RTIL synthesis method resulted in size reduction of Pt nanoparticle, improvement of Pt dispersion on GnP, and identification of the relationships between the mean size of Pt particles with increasing RTIL content. The interaction of Pt particles-GnP is stronger than that of a commercial Pt-CB, and the Pt/GnP catalysts prepared by this method have excellent electrocatalytic activity and stability for methanol oxidation.
机译:人们已经研究了片状石墨纳米片(GnP)作为燃料电池应用的电催化剂载体。 GnP负载的Pt催化剂是在室温离子液体(RTILs)存在下通过微波工艺合成的。通过热重分析研究了GnP和GnP负载的Pt催化剂的抗热氧化性能,并将其与其他多种碳纳米结构进行了比较:炭黑,石墨纳米纤维,单壁和多壁碳纳米管。 GnP显示出最佳的热氧化稳定性。 X射线衍射,X射线光电子能谱,电化学测试,扫描和透射电子显微镜的结果表明,RTIL合成方法可减小Pt纳米颗粒的尺寸,改善Pt在GnP上的分散性,并确定它们之间的关系。 RTIL含量增加时,Pt颗粒的平均尺寸。 Pt颗粒-GnP的相互作用比市售Pt-CB的相互作用强,并且通过此方法制备的Pt / GnP催化剂具有优异的电催化活性和甲醇氧化稳定性。

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